Vibrations, temperature changes, electromagnetic waves, and other interactions between qubits and the environment or material defects in qubits can cause quantum decoherence. In quantum decoherence, the qubits lose their information, and the calculation cannot be completed.
"Maintaining quantum coherence requires a level of materials characterization and purification that is significantly more demanding than any other field. This new affiliation allows us to take advantage of PPPL's expertise in plasma-based growth of quantum diamonds to accelerate C2QA's work in distributed quantum computing," said Andrew Houck, C2QA director and joint appointee at Brookhaven and Princeton University, where he is a professor of electrical and computer engineering. "C2QA is committed to adding affiliates to the collaboration where new relationships can be developed and further build the QIS networking ecosystem."
"Quantum-grade Diamond"
"PPPL will focus on plasma-assisted synthesis and doping of quantum-grade diamond," said David Graves, associate laboratory director for low-temperature plasma surface interactions and a professor in the Princeton Department of Chemical and Biological Engineering. "We will couple these efforts with C2QA expertise in quantum characterization, materials spectroscopy and quantum information science," Graves said. "In this way, we anticipate that the collaboration will ultimately lead to improvements in the purity and quality of plasma-grown diamond substrates for quantum applications."
Through materials, devices, and software co-design efforts, the C2QA team is working to understand and control material properties to extend the coherence time on quantum computers, design devices to generate more robust qubits, optimize algorithms to target specific scientific applications, and develop error-correction solutions.
To achieve its goals, C2QA leverages materials characterization facilities at Brookhaven's Center for Functional Nanomaterials (CFN) and National Synchrotron Light Source II (NSLS-II), device design and fabrication capabilities in industry and academia, and IBM's Qiskit open-source framework for writing quantum programs and its Quantum Prime prototype quantum computer.